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PSM, a mediator of PDGF-BB-, IGF-I-, and insulin-stimulated mitogenesis
1Department of Biological Sciences, Wayne State University, Detroit, Michigan, MI 48202, USA.
Abstract:
PSM/SH2-B has been described as a cellular partner of the FcepsilonRI receptor, insulin receptor (IR), insulin-like growth factor-I (IGF-I) receptor (IGF-IR), and nerve growth factor receptor (TrkA). A function has been proposed in neuronal differentiation and development but its role in other signaling pathways is still unclear. To further elucidate the physiologic role of PSM we have identified additional mitogenic receptor tyrosine kinases as putative PSM partners including platelet-derived growth factor (PDGF) receptor (PDGFR) beta, hepatocyte growth factor receptor (Met), and fibroblast growth factor receptor. We have mapped Y740 as a site of PDGFR beta that is involved in the association with PSM. We have further investigated the putative role of PSM in mitogenesis with three independent experimental strategies and found that all consistently suggested a role as a positive, stimulatory signaling adapter in normal NIH3T3 and baby hamster kidney fibroblasts. (1) PSM expression from cDNA using an ecdysone-regulated transient expression system stimulated PDGF-BB-, IGF-I-, and insulin- but not EGF-induced DNA synthesis in an ecdysone dose-responsive fashion; (2) Microinjection of the (dominant negative) PSM SH2 domain interfered with PDGF-BB- and insulin-induced DNA synthesis; and (3) A peptide mimetic of the PSM Pro-rich putative SH3 domain-binding region interfered with PDGF-BB-, IGF-I-, and insulin- but not with EGF-induced DNA synthesis in NIH3T3 fibroblasts. This experiment was based on cell-permeable fusion peptides with the Drosophila antennapedia homeodomain which effectively traverse the plasma membrane of cultured cells. These experimental strategies independently suggest that PSM functions as a positive, stimulatory, mitogenic signaling mediator in PDGF-BB, IGF-I, and insulin but not in EGF action. This function appears to involve the PSM SH2 domain as well as the Pro-rich putative SH3 domain binding region. Our findings support the model that PSM participates as an adapter in various mitogenic signaling mechanisms by linking an activated (receptor) phospho-tyrosine to the SH3 domain of an unknown cellular partner.
Insights
PSM/SH2-B acts as a positive signaling adapter, mediating mitogenesis for PDGF-BB, IGF-I, and insulin signaling pathways. Its role in EGF signaling was not observed, suggesting involvement in specific mitogenic receptor tyrosine kinase pathways.
Area of Science:
- Cellular Biology
- Molecular Signaling
- Biochemistry
Background:
- PSM/SH2-B is known to interact with several receptors, including FcepsilonRI, insulin receptor (IR), IGF-I receptor (IGF-IR), and TrkA.
- Its function in neuronal differentiation and development is proposed, but its role in other signaling pathways remains unclear.
Purpose of the Study:
- To identify additional mitogenic receptor tyrosine kinases interacting with PSM/SH2-B.
- To elucidate the role of PSM/SH2-B in mitogenesis and its involvement in various signaling pathways.
Main Methods:
- Identified new PSM/SH2-B partners: PDGFR-beta, Met, and FGFR.
- Mapped Y740 as a PSM-binding site on PDGFR-beta.
- Utilized ecdysone-inducible transient expression, dominant-negative SH2 domain microinjection, and peptide mimetics to assess PSM's role in DNA synthesis.
Main Results:
- PSM expression stimulated PDGF-BB-, IGF-I-, and insulin-induced DNA synthesis in a dose-dependent manner.
- Dominant-negative PSM SH2 domain and SH3 domain peptide mimetic inhibited PDGF-BB-, IGF-I-, and insulin-induced DNA synthesis.
- PSM did not affect EGF-induced DNA synthesis in any experimental strategy.
Conclusions:
- PSM/SH2-B acts as a positive, stimulatory signaling adapter in PDGF-BB, IGF-I, and insulin-mediated mitogenesis.
- PSM's function involves its SH2 domain and Pro-rich SH3-binding region.
- PSM likely acts as an adapter, linking activated receptor phospho-tyrosine to the SH3 domain of an unknown partner in mitogenic signaling.